Roots of the quadratic equation x2-4x-3- x2-6x-8-0- R will be

(x^2 4x+3)+λ(x^2 6x+8)=0 x^2(1+λ) 2x(2+3λ)+(3+8λ)=0 Discriminant. D=4(2+3λ)^2 4(1+λ)(3+8λ) D=4(λ^2+λ+1) if λ∈ R then D 0 so root of given quadratic are always r ...

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Standard XI

Mathematics

Discriminant

Roots of the ...

Question

Roots of the quadratic equation $(x^{2} - 4 x + 3) + λ (x^{2} - 6 x + 8) = 0, λ \in R$ will be

always real

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real only when lis positive

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real only when l is negative

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always imaginary

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Solution

The correct option is A always real
$(x^{2} - 4 x + 3) + λ (x^{2} - 6 x + 8) = 0$
$x^{2} (1 + λ) - 2 x (2 + 3 λ) + (3 + 8 λ) = 0$
Discriminant. $D = 4 (2 + 3 λ)^{2} - 4 (1 + λ) (3 + 8 λ)$
$D = 4 (λ^{2} + λ + 1)$
if $λ \in R$ then $D > 0$
so root of given quadratic are always real.

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Roots of the quadratic equation (x2−4x+3)+λ(x2−6x+8)=0,λ∈R will be

The correct option is A always real(x2−4x+3)+λ(x2−6x+8)=0 x2(1+λ)−2x(2+3λ)+(3+8λ)=0 Discriminant. D=4(2+3λ)2−4(1+λ)(3+8λ) D=4(λ2+λ+1) if λ∈R then D>0 so root of given quadratic are always real.

Roots of the quadratic equation $(x^{2} - 4 x + 3) + λ (x^{2} - 6 x + 8) = 0, λ \in R$ will be

The correct option is A always real
$(x^{2} - 4 x + 3) + λ (x^{2} - 6 x + 8) = 0$
$x^{2} (1 + λ) - 2 x (2 + 3 λ) + (3 + 8 λ) = 0$
Discriminant. $D = 4 (2 + 3 λ)^{2} - 4 (1 + λ) (3 + 8 λ)$
$D = 4 (λ^{2} + λ + 1)$
if $λ \in R$ then $D > 0$
so root of given quadratic are always real.